SOTAVerified

Time Series Analysis

Time Series Analysis is a statistical technique used to analyze and model time-based data. It is used in various fields such as finance, economics, and engineering to analyze patterns and trends in data over time. The goal of time series analysis is to identify the underlying patterns, trends, and seasonality in the data, and to use this information to make informed predictions about future values.

( Image credit: Autoregressive CNNs for Asynchronous Time Series )

Papers

Showing 36513675 of 6748 papers

TitleStatusHype
Synthesising a Database of Parameterised Linear and Non-Linear Invariants for Time-Series Constraints0
Synthesizing time-series wound prognosis factors from electronic medical records using generative adversarial networks0
Synthetic Active Distribution System Generation via Unbalanced Graph Generative Adversarial Network0
Synthetic Control Methods and Big Data0
Synthetic Event Time Series Health Data Generation0
Synthetic Photovoltaic and Wind Power Forecasting Data0
Synthetic Time-Series Load Data via Conditional Generative Adversarial Networks0
System Identification in Multi-Actuator Hard Disk Drives with Colored Noises using Observer/Kalman Filter Identification (OKID) Framework0
System identification using Bayesian neural networks with nonparametric noise models0
T4PdM: a Deep Neural Network based on the Transformer Architecture for Fault Diagnosis of Rotating Machinery0
Tab2vox: CNN-Based Multivariate Multilevel Demand Forecasting Framework by Tabular-To-Voxel Image Conversion0
Tail Granger causalities and where to find them: extreme risk spillovers vs. spurious linkages0
Takens-inspired neuromorphic processor: a downsizing tool for random recurrent neural networks via feature extraction0
Taking ROCKET on an efficiency mission: A distributed solution for fast and accurate multivariate time series classification0
Taming the Long Tail of Deep Probabilistic Forecasting0
Tampered VAE for Improved Satellite Image Time Series Classification0
TAMP-S2GCNets: Coupling Time-Aware Multipersistence Knowledge Representation with Spatio-Supra Graph Convolutional Networks for Time-Series Forecasting0
Targeted Attacks on Timeseries Forecasting0
Task-aware Similarity Learning for Event-triggered Time Series0
Task-Oriented Prediction and Communication Co-Design for Haptic Communications0
Task Runtime Prediction in Scientific Workflows Using an Online Incremental Learning Approach0
Taxi demand forecasting: A HEDGE based tessellation strategy for improved accuracy0
Fixed-k Tail Regression: New Evidence on Tax and Wealth Inequality from Forbes 4000
TCN Mapping Optimization for Ultra-Low Power Time-Series Edge Inference0
TDEFSI: Theory Guided Deep Learning Based Epidemic Forecasting with Synthetic Information0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1naive classifierF187.47Unverified
2GRU-D - APC (n = 1)F127.3Unverified
3GRU-APC (n = 1)F125.7Unverified
4GRU-DF122.5Unverified
5GRUF122.3Unverified
6GRU-SimpleF122.2Unverified
7GRU-MeanF122.1Unverified
#ModelMetricClaimedVerifiedStatus
1SepTr% Test Accuracy98.51Unverified
2ViT% Test Accuracy98.11Unverified
3FlexTCN-4% Test Accuracy97.73Unverified
4MatchboxNet% Test Accuracy97.4Unverified
5CKCNN (100k)% Test Accuracy95.27Unverified
6FlexTCN-6% Test Accuracy (Raw Data)91.73Unverified
#ModelMetricClaimedVerifiedStatus
1ResBiLSTMMAE0.13Unverified